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Effects of pore size distribution and fiber diameter on the coupled heat and liquid moisture transfer in porous textiles

โœ Scribed by Qingyong Zhu; Yi Li


Publisher
Elsevier Science
Year
2003
Tongue
English
Weight
585 KB
Volume
46
Category
Article
ISSN
0017-9310

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โœฆ Synopsis


The pore size distribution and the fiber diameter on the coupled heat and liquid moisture transfer in porous textiles are investigated to reveal the mechanisms of the coupling effects. This paper focuses on a theoretical investigation of the coupling mechanism of heat transfer and liquid moisture diffusion in porous textiles by using an improved mathematical model. In this model, the pore size distribution is assumed to be a cubic-polynomial distribution, which is close to the experimental measurements [Text. Res. J. 56 (1) (1986) 35]. The liquid diffusion behavior in porous textiles can be described as a diffusion equation. The improved diffusion coefficient can be expressed as:

5eร€4e l e l r cos /. For comparison, two types of pore distribution and the fiber diameter in the porous textiles are discussed. With specification of initial and boundary conditions, the distributions of the temperature, moisture concentration, and liquid water content in the porous textiles can be numerically computed. The comparison with the experimental measurements shows the superiority of this new model in resolving the coupled heat and liquid moisture transfer in porous textiles. The results illustrate that the heat transfer process is influenced by the pore size distribution and fiber diameter of the porous textiles.


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Analysis of the effect of particle size
โœ Lakshminarasimha Padmanabhan; Benjamin Gal-Or ๐Ÿ“‚ Article ๐Ÿ“… 1968 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 914 KB

Abstiact-A theoretical treatment of heat or mass transfer in particulate systems is made with emphasis on the effect of particle size and residence time distribution functions on average and total transfer rates. Two differential equations (one for each phase) for mass or heat transfer are solved si